The present invention provides an optical transmission device, a transmission system, and a control method for a transmission system which make it possible to adjust the wavelength band of dummy light according to the wavelength band of an added main signal. This optical transmission device comprises: an output branching unit which multiplexes and outputs an added main signal and dummy light; a wavelength adjustment unit which adjusts the wavelength band of the dummy light; a signal detection unit to which an optical signal outputted by the output branching unit is inputted, and which detects the wavelength band of the added main signal and outputs a detection result; and a control unit which controls the wavelength adjustment unit according to the detection result from the signal detection unit.
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7. A control method for a transmission system to which an optical transmission device is connected via an optical fiber, the control method comprising:
multiplexing a main signal from a transmitter and dummy light to be input, and outputting the multiplexed signal to an optical transmission line;
measuring optical signal intensity of each wavelength of a multiplexed output of a main signal from the transmitter and dummy light to be input, and outputting a detection result; and
adjusting a wavelength band of a signal of the multiplexed output according to the detection result, wherein
the wavelength band of the added main signal is selected, and a signal of the selected wavelength band is output, and wherein the signal of the selected wavelength band is output to the optical transmission line in response to control the wavelength band of the dummy light.
1. An optical transmission device comprising:
an output branching unit that multiplexes an added main signal and dummy light and outputs the multiplexed signal to an optical transmission line;
a wavelength adjustment unit that adjusts a wavelength band of the dummy light;
a signal detection unit that inputs an optical signal to be output by the output branching unit, detects a wavelength band of an added main signal, and outputs a detection result; and
a control unit that controls the wavelength adjustment unit according to a detection result of the signal detection unit, wherein
the output branching unit selects the wavelength band of the added main signal, outputs a signal of the selected wavelength band to the signal detection unit, and outputs the signal of the selected wavelength band to the optical transmission line in response to the wavelength adjustment unit controlling the wavelength band of the dummy light.
2. The optical transmission device according to
the signal detection unit monitors a center wavelength and the wavelength band of the added main signal, and outputs the detection result.
3. The optical transmission device according to
the control unit instructs the wavelength adjustment unit to control the wavelength band of the dummy light according to the detection result of the signal detection unit.
4. The optical transmission device according to
the control unit instructs the wavelength adjustment unit to control the wavelength band of the dummy light, and also instructs the output branching unit to change an output state.
5. The optical transmission device according to
power of dummy light to be output by the output branching unit is controlled according to the detection result of the signal detection unit.
6. A transmission system including an optical transmission device connected via an optical fiber, the transmission system comprising
the optical transmission device according to
8. The control method for the transmission system according to
a center wavelength and a wavelength band of a signal to be input from the transmitter is monitored, and the detection result is output.
9. The control method for the transmission system according to
the wavelength band of the dummy light is controlled according to the detection result.
10. The control method for the transmission system according to
power of the dummy light is controlled according to the detection result.
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This application is a national stage application of International Application No. PCT/JP2019/001988 entitled “Optical Transmission Device, Transmission System, and Control Method for Transmission System” filed on Jan. 23, 2019, which claims priority to Japanese Patent Application No. JP2018-014326 filed on Jan. 31, 2018, the disclosures of which are hereby incorporated by reference in their entirety.
The present invention relates to an optical transmission device, a transmission system, and a control method for a transmission system, and in particular to compensation of an optical signal to be transmitted through an optical fiber.
In an optical submarine cable system, as traffic increases, it is required to widen a bandwidth of a line and enhance functionality of a network. Thus, technologies such as an optical add-drop multiplexer (OADM) and a reconfigurable optical add-drop multiplexer (ROADM) are applied to the optical submarine cable system.
In the optical submarine cable system to which the ROADM technology is applied, a wavelength division multiplexing (WDM) communication is used. An optical transmission device inputs, as a wavelength multiplexed optical signal, a client signal to a submarine cable, and accommodates a plurality of paths in one optical fiber, thereby improving flexibility of a network.
The optical submarine cable system is controlled in such a way that total power of a signal to be transmitted through a cable constituted of the optical fiber is constant. For example, when a part of a wavelength component of the signal to be transmitted is lost due to disconnection of the optical submarine cable or the like, it can be considered to compensate for power of the lost signal by amplifying the other wavelength component of the signal. However, when power of a specific wavelength component of the signal is increased, an optical spectrum changes due to a nonlinear effect of the optical fiber, and thus transmission line quality of the signal deteriorates. Therefore, the submarine cable system uses a function that compensates for lost signal intensity with dummy light.
For example, Patent Literature 1 (PTL1) proposes, in an optical transmission device of a landing station, generating dummy light depending on power fluctuation of a main signal to be transmitted by a transmission unit. In PTL1, the main signal to be transmitted by the transmission unit and the dummy light are multiplexed in a multiplexing unit and then output to an opposite terminal station.
Patent Literature 2 (PTL2) is related to a monitoring test method for a dark fiber, and proposes that a facility rental company of the dark fiber monitors an optical transmission characteristic of the dark fiber and notifies a user of a rented dark fiber.
[PTL1] International Publication No. WO2015/045311
[PTL2] Japanese Patent Application Laid-Open No. 2003-244080
An optical transmission device includes a transmission unit that outputs a main signal and a multiplexing unit that multiplexes and outputs the main signal to be output by the transmission unit. Herein, it is assumed that vendors that manufacture the transmission unit and the multiplexing unit that constitute a transmission device are different. A transmitter that transmits the main signal may also be manufactured by various vendors and configured according to various standards.
When the transmission device is manufactured by a single vendor, it is possible to set, at a time of system design, a wavelength band of the main signal including an additional component after operation including the transmission unit and the multiplexing unit, and thus dummy light is provided in a wavelength band different from the wavelength band of the main signal. However, when the transmitter is manufactured by various vendors, it is assumed that the main signal is added in a wavelength band that is not set at the start of operation. It is also assumed that the wavelength of the main signal to be added is actually different from a wavelength designed by the system. At this time, a problem of overlapping of the wavelength bands between the main signal and the dummy light may occur.
Therefore, it is necessary to adjust the wavelength band of the dummy light according to the wavelength band of the main signal to be added, however, PTL1 does not describe a technique for achieving the adjustment.
An object of the present invention is to provide an optical transmission device, a transmission system, and a control method for a transmission system that can adjust a wavelength band of dummy light according to a wavelength band of a main signal to be added.
In order to achieve the above-described object, an optical transmission device according to the present invention includes:
an output branching unit that multiplexes and outputs an added main signal and dummy light;
a wavelength adjustment unit that adjusts a wavelength band of the dummy light;
a signal detection unit that inputs an optical signal to be output by the output branching unit, detects a wavelength band of an added main signal, and outputs a detection result; and
a control unit that controls the wavelength adjustment unit according to a detection result of the signal detection unit.
A transmission system according to the present invention includes an optical transmission device connected via an optical fiber, wherein
the optical transmission device includes:
an output branching unit that multiplexes and outputs an added main signal and dummy light;
a wavelength adjustment unit that adjusts a wavelength band of the dummy light;
a signal detection unit that inputs an optical signal to be output by the output branching unit, detects a wavelength band of an added main signal, and outputs a detection result; and
a control unit that controls the wavelength adjustment unit according to a detection result of the signal detection unit.
A control method for a transmission system according to the present invention is a control method for a transmission system to which an optical transmission device is connected via an optical fiber, and includes:
multiplexing and outputting a main signal from a transmitter and dummy light to be input;
measuring optical signal intensity of each wavelength of a multiplexed output of a main signal from the transmitter and dummy light to be input, and outputting a detection result; and
adjusting a wavelength band of a signal of the multiplexed output according to the detection result.
The present invention is able to provide the optical transmission device, the transmission system, and the control method for the transmission system that can adjust the wavelength band of the dummy light according to the wavelength band of the main signal to be added.
A preferred example embodiment of the present invention is described in detail with reference to the drawings.
An upper diagram and a lower diagram in
The optical transmission device in the upper diagram of
The optical transmission device in the upper diagram of
The output branching unit 103 can output a main signal to be input and dummy light to the optical fiber and the signal detection unit 105. Herein, the output branching unit 103 may be constituted of, for example, an optical coupler. The output branching unit 103 may also be constituted of a wavelength selective switch.
The wavelength band adjustment unit 104 adjusts a wavelength band of the dummy light. The wavelength band adjustment unit 104 may be constituted of, for example, a tunable optical filter. The wavelength band adjustment unit 104 may be provided integrally with the dummy light output unit 107.
The output branching unit 103 and the wavelength band adjustment unit 104 may be integrated and constituted of a wavelength selective switch (WSS).
The signal detection unit 105 can measure a wavelength band of the optical signal of each wavelength from the output branching unit 103. Further, the signal detection unit 105 may be capable of measuring a center wavelength, intensity, and the like of the optical signal of each wavelength. The signal detection unit 105 may be constituted of an optical channel monitor (OCM).
The control unit 106 controls the wavelength band adjustment unit 104 and the output branching unit 103. The control unit 106 controls the wavelength band adjustment unit 104 and the output branching unit 103, based on an output of the signal detection unit 105. When the wavelength band adjustment unit 104 and the output branching unit 103 are configured as the WSS, the control unit 106 may be provided within the WSS.
<Operation>
Among the operations of the optical transmission device in the upper diagram of
It is assumed that the existing transmitter 101c outputs a signal of a first wavelength, the existing transmitter 101b outputs a signal of a second wavelength, and the added transmitter 101c outputs a signal of a third wavelength.
First, the transmitter 101c is added to the optical transmission device in the upper diagram of
Next, the signal detection unit 105 monitors a wavelength band of the optical signal to be input from the output branching unit 103 (step S3), and notifies the control unit 106 of a monitoring result.
Next, the control unit 106 controls a wavelength band of the dummy light, based on the monitoring result from the signal detection unit 105 (step S4). More specifically, the control unit 106 identifies the wavelength band of the signal of the added third wavelength, based on the monitoring result from the signal detection unit 105. The control unit 106 instructs the wavelength band adjustment unit 104 to control the wavelength of the dummy light. For example, the control unit 106 controls the wavelength band adjustment unit 104 in such a way as to block a wavelength band that overlaps with the wavelength band of the signal of the third wavelength among the wavelength bands of the dummy light.
The output branching unit 103 outputs, to the optical fiber, the existing main signal, the optical signal of the added wavelength, and the dummy light of which a wavelength band is adjusted (step S5). When the output branching unit 103 is constituted of the wavelength selective switch, the control unit 106 may instruct the output branching unit 103 to output the optical signal of the added wavelength to the optical fiber, in response to the wavelength band adjustment unit 104 controlling the wavelength band of the dummy light.
By such an operation, among the wavelength bands of the dummy light illustrated in
According to the optical transmission device in
Further, in the optical transmission device of
Further, the optical transmission device in
The optical transmission device in
The multiplexing unit 102 includes an output branching unit 103, and a wavelength band adjustment unit 104 as one example of a wavelength adjustment unit. The multiplexing unit 102 is constituted of wavelength multiplexing equipment (WME), for example.
The output branching unit 103 in the multiplexing unit 102 can output a main signal to be input and dummy light to the optical fiber and the OCM 108. Herein, the output branching unit 103 may be constituted of an optical coupler. Further, the output branching unit 103 in the multiplexing unit 102 may be constituted of a wavelength selective switch capable of switching, in a wavelength unit, an output destination of the optical signal to be input.
The wavelength band adjustment unit 104 in the multiplexing unit 102 adjusts a wavelength band of the dummy light. The wavelength band adjustment unit 104 in the multiplexing unit 102 is constituted of, for example, a tunable optical filter.
The OCM 108 measures optical signal intensity of each wavelength from the output branching unit 103 in the multiplexing unit 102.
The control unit 106 controls the wavelength band adjustment unit 104 and the output branching unit 103 included in the multiplexing unit 102. The control unit 106 controls the wavelength band adjustment unit 104 and the output branching unit 103 in the multiplexing unit 102, based on an output of the OCM 108. When the multiplexing unit 102 is configured as the WSS, the control unit 106 may be provided within the WSS.
According to the present example embodiment, the control unit 106 performs power control of the dummy light according to a monitoring result from the OCM 108. In other words, according to the present example embodiment, the power control of the dummy light is performed according to a power monitoring result of the OCM 108 included in an optical transmission device on a transmission side.
Note that the power control of the dummy light according to the monitoring result of the OCM 108 may be performed according to a monitoring result of an OCM provided on a reception side. A reference value may be set during the power control, regardless of using the OCM on the transmission side or on the reception side.
<Operation>
Among the operations of the optical transmission device in
It is assumed that the existing transmitter 101c outputs a signal of a wavelength λ1, the existing transmitter 101b outputs a signal of a wavelength λ2, and the added transmitter 101c outputs a signal of a wavelength λ3.
First, the transmitter 101c is added as illustrated in
Next, the OCM 108 monitors a center wavelength and a wavelength band of the inputted signal of the wavelength λ3 (step S13), and notifies the control unit 106 of a monitoring result.
Next, the control unit 106 controls a wavelength of the dummy light, based on the monitoring result from the OCM 108 (step S14). More specifically, the control unit 106 instructs the wavelength band adjustment unit 104 in the multiplexing unit 102 to control the wavelength band of the dummy light. Further, the control unit 106 controls power of the dummy light, based on the monitoring result from the OCM 108 (step S15). Note that the control of the wavelength band of the dummy light and the control of the power of the dummy light, based on the monitoring result, may be performed simultaneously, or the control of the wavelength band of the dummy light may be performed after the control of the power of the dummy light.
Next, the optical signal of the added wavelength is output to the optical fiber (step S16). More specifically, the control unit 106 instructs the output branching unit 103 to output the optical signal of the added wavelength to the optical fiber, in response to the wavelength band adjustment unit 104 controlling the wavelength band of the dummy light.
By such an operation, among the wavelength bands of the dummy light illustrated in
According to the present example embodiment, power control of the dummy light is performed according to the monitoring result from the OCM 108. This enables controlling the wavelength band of the dummy light as well as controlling the power of the dummy light.
The optical transmission device in
When a transmitter is added to the optical transmission device in
The optical transmission device in
Next, a fourth example embodiment will be described.
In the submarine cable system, all of the laid fiber pairs of the optical transmission line may not be operated from a time of starting, and an operation is started with a minimum configuration. For example, only the fiber pair FP1 of the optical transmission line in
The transmission-side transmission device of the optical transmission device in
In the transmission-side transmission device of the optical transmission device according to the present example embodiment, optical fiber monitoring can be performed by continuously sending an optical signal to the fiber pair FP1 of the optical transmission line by using the dummy light from the dummy light output unit 7 in a state without connecting the transmitter and a receiver as illustrated in
The transmission-side transmission device of the optical transmission device according to the present example embodiment can be a redundant configuration in which only the dummy light is being transmitted as illustrated in
In the optical transmission device according to the present example embodiment, the dummy light and the like sent to the fiber pair of the optical transmission line by the transmission-side transmission device can be monitored by the reception-side transmission device. The reception-side transmission device of the optical transmission device in
Next, ON/OFF automatic control of the dummy light will be described. It is assumed that a transmitter is connected to the device configuration that sends only the dummy light to the optical fiber illustrated in
As illustrated in the conceptual diagram of
When the transmitter is connected to the transmission-side transmission device, for example, a plurality of transponders as a plurality of existing transmitters output a signal of a wavelength λ1, a signal of a wavelength λ2 on a longer wave side than the wavelength λ1, a signal of a wavelength λ3 on a longer wave side than the wavelength λ2, and a signal of a wavelength λ4 from an added transmitter. When the transmitter is connected to the transmission-side transmission device, a center wavelength and a bandwidth of the signal are detected in the OCM 108 of the transmission-side transmission device in
Next, a sequence of an automatic adjustment function will be described with reference to
While the optical power of the wavelength by the added transmitter is monitored by the OCM 108 or the OCM 24, the optical power is adjusted by the multiplexing unit 2 in
The preferred example embodiments have been described above, however the present invention is not limited to these example embodiments, and various changes and expansions are possible. For example, an add/drop ratio in a submarine reconfigurable optical add-drop multiplexer (ROADM) device may be changed according to wavelength band control of dummy light. In a transmission system of
While the invention has been particularly shown and described with reference to example embodiments thereof, the invention is not limited to these embodiments. It will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present invention as defined by the claims.
This application is based upon and claims the benefit of priority from Japanese patent application No. 2018-14326, filed on Jan. 31, 2018, the disclosure of which is incorporated herein in its entirety by reference.
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